Faculty of Science at Sriracha, Kasetsart University, Sriracha Campus, Sriracha, Chonburi, Thailand.
School of Chemistry, Institute of Science and Center for Biomolecular Structure, Function and Application, Suranaree University of Technology, Muang, Nakhon Ratchasima, Thailand.
PLoS One. 2021 Jan 20;16(1):e0241325. doi: 10.1371/journal.pone.0241325. eCollection 2021.
Monolignol glucosides are storage forms of monolignols, which are polymerized to lignin to strengthen plant cell walls. The conversion of monolignol glucosides to monolignols is catalyzed by monolignol β-glucosidases. Rice Os4BGlu18 β-glucosidase catalyzes hydrolysis of the monolignol glucosides, coniferin, syringin, and p-coumaryl alcohol glucoside more efficiently than other natural substrates. To understand more clearly the basis for substrate specificity of a monolignol β-glucosidase, the structure of Os4BGlu18 was determined by X-ray crystallography. Crystals of Os4BGlu18 and its complex with δ-gluconolactone diffracted to 1.7 and 2.1 Å resolution, respectively. Two protein molecules were found in the asymmetric unit of the P212121 space group of their isomorphous crystals. The Os4BGlu18 structure exhibited the typical (β/α)8 TIM barrel of glycoside hydrolase family 1 (GH1), but the four variable loops and two disulfide bonds appeared significantly different from other known structures of GH1 β-glucosidases. Molecular docking studies of the Os4BGlu18 structure with monolignol substrate ligands placed the glycone in a similar position to the δ-gluconolactone in the complex structure and revealed the interactions between protein and ligands. Molecular docking, multiple sequence alignment, and homology modeling identified amino acid residues at the aglycone-binding site involved in substrate specificity for monolignol β-glucosides. Thus, the structural basis of substrate recognition and hydrolysis by monolignol β-glucosidases was elucidated.
一苯丙素葡萄糖苷是苯丙素的储存形式,它们聚合形成木质素以增强植物细胞壁。一苯丙素葡萄糖苷向一苯丙素的转化由一苯丙素β-葡萄糖苷酶催化。水稻 Os4BGlu18β-葡萄糖苷酶比其他天然底物更有效地催化一苯丙素葡萄糖苷、松柏苷、丁香苷和对香豆醇葡萄糖苷的水解。为了更清楚地了解一苯丙素β-葡萄糖苷酶的底物特异性基础,通过 X 射线晶体学确定了 Os4BGlu18 的结构。Os4BGlu18 及其与δ-葡萄糖酸内酯复合物的晶体分别衍射到 1.7 和 2.1 Å 的分辨率。在其同晶的 P212121 空间群的不对称单位中发现了两个蛋白质分子。Os4BGlu18 结构表现出糖苷水解酶家族 1(GH1)的典型(β/α)8 TIM 桶,但四个可变环和两个二硫键与其他已知 GH1β-葡萄糖苷酶结构明显不同。Os4BGlu18 结构与一苯丙素底物配体的分子对接研究将糖基置于与复合物结构中δ-葡萄糖酸内酯相似的位置,并揭示了蛋白质与配体之间的相互作用。分子对接、多重序列比对和同源建模确定了与一苯丙素β-葡萄糖苷底物特异性相关的非糖结合部位的氨基酸残基。因此,阐明了一苯丙素β-葡萄糖苷酶识别和水解底物的结构基础。